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Automated detection of photoreceptors in in-vivo retinal images

机译:自动检测体内视网膜图像中的感光器

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The inclusion of adaptive optics (AO) into ophthalmic imaging technology has allowed the study of histological elements of retina in-vivo, such as photoreceptors, retinal pigment epithelium (RPE) cells, retinal nerve fiber layer and ganglion cells. The high-resolution images obtained with ophthalmic AO imaging devices are rich with information that is difficult and/or tedious to quantify using manual methods. Thus, robust, automated analysis tools that can provide reproducible quantitative information about the tissue under examination are required. Automated algorithms have been developed to detect the position of individual photoreceptor cells and characterize the RPE mosaic. In this work, an algorithm is presented for the detection of photoreceptors. The algorithm has been tested in synthetic and real images acquired with an Adaptive Optics Scanning Laser Ophthalmoscope (AOSLO) and compared with the one developed by Li and Roorda. It is shown that both algorithms have similar performance on synthetic and cones-only images, but the one here proposed shows more accurate measurements when it is used for cones-rods detection in real images.
机译:眼科成像技术中包含自适应光学(AO),可以研究体内视网膜的组织学成分,例如感光细胞,视网膜色素上皮(RPE)细胞,视网膜神经纤维层和神经节细胞。用眼科AO成像设备获得的高分辨率图像富含信息,这些信息难以和/或繁琐地使用手动方法进行量化。因此,需要能够提供关于被检查组织的可再现的定量信息的健壮的自动化分析工具。已经开发出自动算法来检测单个感光细胞的位置并表征RPE镶嵌。在这项工作中,提出了一种用于检测感光体的算法。该算法已通过自适应光学扫描激光检眼镜(AOSLO)在合成图像和真实图像中进行了测试,并与Li和Roorda开发的算法进行了比较。结果表明,两种算法在合成图像和仅包含锥面的图像上都具有相似的性能,但此处提出的算法在用于真实图像中的锥面杆检测时显示出更准确的测量结果。

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